| Literature DB >> 28774146 |
Liyun Zhao1, Yujin Zhang2, Hong Ma3, Jiancai Leng4.
Abstract
The two-photon absorption and optical limiting properties of two dibenzylideneacetone derivatives with different substituent positions have been theoretically investigated by solving the coupled rate equations-field intensity equation in the nanosecond time domain using an iterative predictor-corrector finite-difference time-domain method. The calculations show that the electronic structure, the transition dipole moment, the energy gap between the highest occupied orbital (HOMO) and the lowest unoccupied orbital (LUMO), and the pumping rate for the two molecules are quite different due to the different position of chlorine atoms. Importantly, two-photon absorption and optical limiting properties of the molecules depend crucially on the substituent positions of the terminal group, indicating that subtle manipulation on the molecule can affect the nonlinear optical properties of the medium.Entities:
Keywords: dibenzylideneacetone derivatives; isomer; optical limiting; two-photon absorption
Year: 2016 PMID: 28774146 PMCID: PMC5457006 DOI: 10.3390/ma9121026
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1(a) Molecular structure diagrams of 2-DCDBA and 3-DCDBA; (b) scheme of the three-level theory model.
Excitation energies and transition dipole moments of 2-DCDBA and 3-DCDBA.
| Molecule | ||||
|---|---|---|---|---|
| 2-DCDBA | 3.51 | 3.80 | 2.85 | 4.38 |
| 3-DCDBA | 3.55 | 3.83 | 2.89 | 4.69 |
Figure 2Molecular frontier orbital energy level diagram for 2-DCDBA and 3-DCDBA.
Figure 3Field intensity transmittance as a function of the 2-DCDBA and 3-DCDBA incent light field at different propagation distances.
Figure 4(a) The changes in the pulse intensity envelope; (b) the pump rate (I = 6 × 108 W/cm2, z = 0.24 mm); and (c) the particle number density of three levels for 2-DCDBA and 3-DCDBA (I = 6 × 108 W/cm2, z = 0.24 mm).
Figure 5Optical limiting behaviors of 2-DCDBA and 3-DCDBA at (a) different propagation distances (N = 1 × 1025/m3) and (b) different particle number densities (z = 0.24 mm).
The values of linear absorption coefficient α (103 m/W), the TPA coefficient β (nm/W), dynamical TPA cross section σtp (105 GM), and the static TPA cross section (GM) of 2-DCDBA and 3-DCDBA at different propagation distances.
| Molecule | α | β0 | σtp | σSTPA | |
|---|---|---|---|---|---|
| 2-DCDBA | 0.12 mm | 1.98 | 0.40 | 1.23 | 366 |
| 0.24 mm | 1.04 | 0.81 | 2.48 | ||
| 3-DCDBA | 0.12 mm | 4.09 | 0.89 | 2.72 | 396 |
| 0.24 mm | 2.22 | 1.92 | 5.90 |